Institute of Molecular Functional Materials and Department of Chemistry, The University of Hong Kong, Pokfulam Road, Hong Kong, PR China.
Chemistry. 2011 Jan 3;17(1):130-42. doi: 10.1002/chem.201001965. Epub 2010 Oct 22.
A novel class of luminescent dialkynylgold(III) complexes containing various phenylpyridine and phenylisoquinoline-type bidentate ligands has been successfully synthesized and characterized. The structures of some of them have also been determined by X-ray crystallography. Electrochemical studies demonstrate the presence of a ligand-centered reduction originating from the cyclometalating C^N ligand, whereas the first oxidation wave is associated with an alkynyl ligand-centered oxidation. The electronic absorption and photoluminescence properties of the complexes have also been investigated. In dichloromethane solution at room temperature, the low-energy absorption bands are assigned as the metal-perturbed π-π* intraligand (IL) transition of the cyclometalating C^N ligand, with mixing of charge-transfer character from the aryl ring to the pyridine or isoquinoline moieties of the cyclometalating C^N ligand. The low-energy emission bands of the complexes in fluid solution at room temperature are ascribed to originate from the metal-perturbed π-π* IL transition of the cyclometalatng C^N ligand. For complex 4 that contains an electron-rich amino substituent on the alkynyl ligand, a structureless emission band, instead of one with vibronic structures as in the other complexes, was observed, which was assigned as being derived from an excited state of a [π(C≡CC(6) H(4) NH(2) )→π*(C^N)] ligand-to-ligand charge-transfer (LLCT) transition.
一类新型的含各种苯吡啶和苯异喹啉型双齿配体的发光二炔基金(III)配合物已被成功合成并进行了表征。其中一些配合物的结构也通过 X 射线晶体学确定。电化学研究表明存在配体中心还原,源于环金属化的 C^N 配体,而第一个氧化波与炔基配体中心氧化有关。还研究了配合物的电子吸收和光致发光性能。在室温下的二氯甲烷溶液中,低能吸收带被分配为金属干扰的π-π内配体(IL)跃迁的环金属化 C^N 配体,具有来自芳环的电荷转移特征到环金属化 C^N 配体的吡啶或异喹啉部分的混合。室温下流体溶液中配合物的低能发射带归因于金属干扰的环金属化 C^N 配体的π-π IL 跃迁。对于含有炔基配体上的富电子氨基取代基的配合物 4,观察到没有像其他配合物那样的具有振动结构的无定形发射带,而是分配为源自[π(C≡CC(6)H(4)NH(2))→π*(C^N)]配体到配体电荷转移(LLCT)跃迁的激发态。